6b95a0e999
There are many subclasses of the Memory class and the overwhelming majority of them don't need to be exposed externally. We move all of them to internal headers except MemoryOfflineBuffer, which moves to a separate header. This dramatically reduces the exposed API surface and makes the code more modular. Also, remove the Offline code from libbacktrace. It's not used any where. Test: Unit tests pass, clean tree still builds Change-Id: I55dacdf080daba0bfe65c1ad53a4b326bb482e83
479 lines
14 KiB
C++
479 lines
14 KiB
C++
/*
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* Copyright (C) 2017 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include <errno.h>
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#include <signal.h>
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#include <stdint.h>
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#include <string.h>
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#include <sys/ptrace.h>
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#include <sys/syscall.h>
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#include <unistd.h>
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#include <gtest/gtest.h>
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#include <atomic>
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#include <memory>
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#include <sstream>
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#include <string>
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#include <thread>
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#include <vector>
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#include <android-base/stringprintf.h>
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#include <android-base/threads.h>
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#include <unwindstack/Maps.h>
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#include <unwindstack/Regs.h>
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#include <unwindstack/RegsGetLocal.h>
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#include <unwindstack/Unwinder.h>
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#include "MemoryRemote.h"
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#include "TestUtils.h"
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namespace unwindstack {
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enum TestTypeEnum : uint8_t {
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TEST_TYPE_LOCAL_UNWINDER = 0,
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TEST_TYPE_LOCAL_UNWINDER_FROM_PID,
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TEST_TYPE_LOCAL_WAIT_FOR_FINISH,
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TEST_TYPE_REMOTE,
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TEST_TYPE_REMOTE_WITH_INVALID_CALL,
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};
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static std::atomic_bool g_ready;
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static volatile bool g_ready_for_remote;
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static volatile bool g_signal_ready_for_remote;
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static std::atomic_bool g_finish;
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static std::atomic_uintptr_t g_ucontext;
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static void ResetGlobals() {
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g_ready = false;
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g_ready_for_remote = false;
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g_signal_ready_for_remote = false;
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g_finish = false;
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g_ucontext = 0;
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}
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static std::vector<const char*> kFunctionOrder{"OuterFunction", "MiddleFunction", "InnerFunction"};
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static std::vector<const char*> kFunctionSignalOrder{"OuterFunction", "MiddleFunction",
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"InnerFunction", "SignalOuterFunction",
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"SignalMiddleFunction", "SignalInnerFunction"};
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static void SignalHandler(int, siginfo_t*, void* sigcontext) {
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g_ucontext = reinterpret_cast<uintptr_t>(sigcontext);
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while (!g_finish.load()) {
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}
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}
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extern "C" void SignalInnerFunction() {
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g_signal_ready_for_remote = true;
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// Avoid any function calls because not every instruction will be
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// unwindable.
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// This method of looping is only used when testing a remote unwind.
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while (true) {
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}
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}
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extern "C" void SignalMiddleFunction() {
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SignalInnerFunction();
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}
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extern "C" void SignalOuterFunction() {
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SignalMiddleFunction();
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}
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static void SignalCallerHandler(int, siginfo_t*, void*) {
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SignalOuterFunction();
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}
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static std::string ErrorMsg(const std::vector<const char*>& function_names, Unwinder* unwinder) {
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std::string unwind;
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for (size_t i = 0; i < unwinder->NumFrames(); i++) {
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unwind += unwinder->FormatFrame(i) + '\n';
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}
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return std::string(
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"Unwind completed without finding all frames\n"
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" Looking for function: ") +
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function_names.front() + "\n" + "Unwind data:\n" + unwind;
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}
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static void VerifyUnwind(Unwinder* unwinder, std::vector<const char*> expected_function_names) {
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unwinder->Unwind();
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for (auto& frame : unwinder->frames()) {
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if (frame.function_name == expected_function_names.back()) {
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expected_function_names.pop_back();
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if (expected_function_names.empty()) {
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break;
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}
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}
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}
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ASSERT_TRUE(expected_function_names.empty()) << ErrorMsg(expected_function_names, unwinder);
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}
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static void VerifyUnwind(pid_t pid, Maps* maps, Regs* regs,
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std::vector<const char*> expected_function_names) {
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auto process_memory(Memory::CreateProcessMemory(pid));
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Unwinder unwinder(512, maps, regs, process_memory);
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VerifyUnwind(&unwinder, expected_function_names);
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}
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// This test assumes that this code is compiled with optimizations turned
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// off. If this doesn't happen, then all of the calls will be optimized
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// away.
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extern "C" void InnerFunction(TestTypeEnum test_type) {
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if (test_type == TEST_TYPE_LOCAL_WAIT_FOR_FINISH) {
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while (!g_finish.load()) {
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}
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return;
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}
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if (test_type == TEST_TYPE_REMOTE || test_type == TEST_TYPE_REMOTE_WITH_INVALID_CALL) {
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g_ready_for_remote = true;
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g_ready = true;
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if (test_type == TEST_TYPE_REMOTE_WITH_INVALID_CALL) {
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void (*crash_func)() = nullptr;
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crash_func();
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}
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// Avoid any function calls because not every instruction will be
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// unwindable.
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// This method of looping is only used when testing a remote unwind.
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while (true) {
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}
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return;
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}
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std::unique_ptr<Unwinder> unwinder;
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std::unique_ptr<Regs> regs(Regs::CreateFromLocal());
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RegsGetLocal(regs.get());
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std::unique_ptr<Maps> maps;
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if (test_type == TEST_TYPE_LOCAL_UNWINDER) {
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maps.reset(new LocalMaps());
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ASSERT_TRUE(maps->Parse());
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auto process_memory(Memory::CreateProcessMemory(getpid()));
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unwinder.reset(new Unwinder(512, maps.get(), regs.get(), process_memory));
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} else {
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UnwinderFromPid* unwinder_from_pid = new UnwinderFromPid(512, getpid());
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ASSERT_TRUE(unwinder_from_pid->Init(regs->Arch()));
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unwinder_from_pid->SetRegs(regs.get());
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unwinder.reset(unwinder_from_pid);
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}
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VerifyUnwind(unwinder.get(), kFunctionOrder);
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}
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extern "C" void MiddleFunction(TestTypeEnum test_type) {
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InnerFunction(test_type);
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}
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extern "C" void OuterFunction(TestTypeEnum test_type) {
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MiddleFunction(test_type);
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}
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class UnwindTest : public ::testing::Test {
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public:
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void SetUp() override { ResetGlobals(); }
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};
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TEST_F(UnwindTest, local) {
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OuterFunction(TEST_TYPE_LOCAL_UNWINDER);
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}
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TEST_F(UnwindTest, local_use_from_pid) {
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OuterFunction(TEST_TYPE_LOCAL_UNWINDER_FROM_PID);
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}
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static void LocalUnwind(void* data) {
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TestTypeEnum* test_type = reinterpret_cast<TestTypeEnum*>(data);
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OuterFunction(*test_type);
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}
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TEST_F(UnwindTest, local_check_for_leak) {
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TestTypeEnum test_type = TEST_TYPE_LOCAL_UNWINDER;
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TestCheckForLeaks(LocalUnwind, &test_type);
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}
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TEST_F(UnwindTest, local_use_from_pid_check_for_leak) {
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TestTypeEnum test_type = TEST_TYPE_LOCAL_UNWINDER_FROM_PID;
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TestCheckForLeaks(LocalUnwind, &test_type);
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}
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void WaitForRemote(pid_t pid, uint64_t addr, bool leave_attached, bool* completed) {
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*completed = false;
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// Need to sleep before attempting first ptrace. Without this, on the
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// host it becomes impossible to attach and ptrace sets errno to EPERM.
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usleep(1000);
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for (size_t i = 0; i < 1000; i++) {
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if (ptrace(PTRACE_ATTACH, pid, 0, 0) == 0) {
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ASSERT_TRUE(TestQuiescePid(pid))
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<< "Waiting for process to quiesce failed: " << strerror(errno);
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MemoryRemote memory(pid);
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// Read the remote value to see if we are ready.
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bool value;
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if (memory.ReadFully(addr, &value, sizeof(value)) && value) {
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*completed = true;
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}
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if (!*completed || !leave_attached) {
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ASSERT_EQ(0, ptrace(PTRACE_DETACH, pid, 0, 0));
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}
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if (*completed) {
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break;
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}
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} else {
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ASSERT_EQ(ESRCH, errno) << "ptrace attach failed with unexpected error: " << strerror(errno);
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}
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usleep(5000);
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}
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}
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TEST_F(UnwindTest, remote) {
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pid_t pid;
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if ((pid = fork()) == 0) {
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OuterFunction(TEST_TYPE_REMOTE);
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exit(0);
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}
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ASSERT_NE(-1, pid);
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TestScopedPidReaper reap(pid);
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bool completed;
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WaitForRemote(pid, reinterpret_cast<uint64_t>(&g_ready_for_remote), true, &completed);
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ASSERT_TRUE(completed) << "Timed out waiting for remote process to be ready.";
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RemoteMaps maps(pid);
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ASSERT_TRUE(maps.Parse());
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std::unique_ptr<Regs> regs(Regs::RemoteGet(pid));
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ASSERT_TRUE(regs.get() != nullptr);
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VerifyUnwind(pid, &maps, regs.get(), kFunctionOrder);
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ASSERT_EQ(0, ptrace(PTRACE_DETACH, pid, 0, 0))
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<< "ptrace detach failed with unexpected error: " << strerror(errno);
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}
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TEST_F(UnwindTest, unwind_from_pid_remote) {
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pid_t pid;
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if ((pid = fork()) == 0) {
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OuterFunction(TEST_TYPE_REMOTE);
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exit(0);
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}
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ASSERT_NE(-1, pid);
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TestScopedPidReaper reap(pid);
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bool completed;
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WaitForRemote(pid, reinterpret_cast<uint64_t>(&g_ready_for_remote), true, &completed);
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ASSERT_TRUE(completed) << "Timed out waiting for remote process to be ready.";
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std::unique_ptr<Regs> regs(Regs::RemoteGet(pid));
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ASSERT_TRUE(regs.get() != nullptr);
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UnwinderFromPid unwinder(512, pid);
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ASSERT_TRUE(unwinder.Init(regs->Arch()));
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unwinder.SetRegs(regs.get());
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VerifyUnwind(&unwinder, kFunctionOrder);
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// Verify that calling the same object works again.
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ASSERT_EQ(0, ptrace(PTRACE_DETACH, pid, 0, 0))
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<< "ptrace detach failed with unexpected error: " << strerror(errno);
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}
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static void RemoteCheckForLeaks(void (*unwind_func)(void*)) {
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pid_t pid;
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if ((pid = fork()) == 0) {
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OuterFunction(TEST_TYPE_REMOTE);
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exit(0);
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}
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ASSERT_NE(-1, pid);
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TestScopedPidReaper reap(pid);
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bool completed;
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WaitForRemote(pid, reinterpret_cast<uint64_t>(&g_ready_for_remote), true, &completed);
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ASSERT_TRUE(completed) << "Timed out waiting for remote process to be ready.";
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TestCheckForLeaks(unwind_func, &pid);
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ASSERT_EQ(0, ptrace(PTRACE_DETACH, pid, 0, 0))
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<< "ptrace detach failed with unexpected error: " << strerror(errno);
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}
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static void RemoteUnwind(void* data) {
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pid_t* pid = reinterpret_cast<pid_t*>(data);
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RemoteMaps maps(*pid);
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ASSERT_TRUE(maps.Parse());
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std::unique_ptr<Regs> regs(Regs::RemoteGet(*pid));
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ASSERT_TRUE(regs.get() != nullptr);
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VerifyUnwind(*pid, &maps, regs.get(), kFunctionOrder);
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}
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TEST_F(UnwindTest, remote_check_for_leaks) {
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RemoteCheckForLeaks(RemoteUnwind);
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}
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static void RemoteUnwindFromPid(void* data) {
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pid_t* pid = reinterpret_cast<pid_t*>(data);
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std::unique_ptr<Regs> regs(Regs::RemoteGet(*pid));
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ASSERT_TRUE(regs.get() != nullptr);
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UnwinderFromPid unwinder(512, *pid);
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ASSERT_TRUE(unwinder.Init(regs->Arch()));
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unwinder.SetRegs(regs.get());
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VerifyUnwind(&unwinder, kFunctionOrder);
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}
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TEST_F(UnwindTest, remote_unwind_for_pid_check_for_leaks) {
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RemoteCheckForLeaks(RemoteUnwindFromPid);
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}
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TEST_F(UnwindTest, from_context) {
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std::atomic_int tid(0);
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std::thread thread([&]() {
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tid = syscall(__NR_gettid);
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OuterFunction(TEST_TYPE_LOCAL_WAIT_FOR_FINISH);
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});
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struct sigaction act, oldact;
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memset(&act, 0, sizeof(act));
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act.sa_sigaction = SignalHandler;
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act.sa_flags = SA_RESTART | SA_SIGINFO | SA_ONSTACK;
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ASSERT_EQ(0, sigaction(SIGUSR1, &act, &oldact));
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// Wait for the tid to get set.
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for (size_t i = 0; i < 100; i++) {
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if (tid.load() != 0) {
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break;
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}
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usleep(1000);
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}
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ASSERT_NE(0, tid.load());
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ASSERT_EQ(0, tgkill(getpid(), tid.load(), SIGUSR1)) << "Error: " << strerror(errno);
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// Wait for context data.
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void* ucontext;
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for (size_t i = 0; i < 2000; i++) {
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ucontext = reinterpret_cast<void*>(g_ucontext.load());
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if (ucontext != nullptr) {
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break;
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}
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usleep(1000);
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}
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ASSERT_TRUE(ucontext != nullptr) << "Timed out waiting for thread to respond to signal.";
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LocalMaps maps;
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ASSERT_TRUE(maps.Parse());
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std::unique_ptr<Regs> regs(Regs::CreateFromUcontext(Regs::CurrentArch(), ucontext));
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VerifyUnwind(getpid(), &maps, regs.get(), kFunctionOrder);
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ASSERT_EQ(0, sigaction(SIGUSR1, &oldact, nullptr));
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g_finish = true;
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thread.join();
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}
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static void RemoteThroughSignal(int signal, unsigned int sa_flags) {
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pid_t pid;
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if ((pid = fork()) == 0) {
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struct sigaction act, oldact;
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memset(&act, 0, sizeof(act));
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act.sa_sigaction = SignalCallerHandler;
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act.sa_flags = SA_RESTART | SA_ONSTACK | sa_flags;
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ASSERT_EQ(0, sigaction(signal, &act, &oldact));
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OuterFunction(signal != SIGSEGV ? TEST_TYPE_REMOTE : TEST_TYPE_REMOTE_WITH_INVALID_CALL);
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exit(0);
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}
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ASSERT_NE(-1, pid);
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TestScopedPidReaper reap(pid);
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bool completed;
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if (signal != SIGSEGV) {
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WaitForRemote(pid, reinterpret_cast<uint64_t>(&g_ready_for_remote), false, &completed);
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ASSERT_TRUE(completed) << "Timed out waiting for remote process to be ready.";
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ASSERT_EQ(0, kill(pid, SIGUSR1));
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}
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WaitForRemote(pid, reinterpret_cast<uint64_t>(&g_signal_ready_for_remote), true, &completed);
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ASSERT_TRUE(completed) << "Timed out waiting for remote process to be in signal handler.";
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RemoteMaps maps(pid);
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ASSERT_TRUE(maps.Parse());
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std::unique_ptr<Regs> regs(Regs::RemoteGet(pid));
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ASSERT_TRUE(regs.get() != nullptr);
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VerifyUnwind(pid, &maps, regs.get(), kFunctionSignalOrder);
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ASSERT_EQ(0, ptrace(PTRACE_DETACH, pid, 0, 0))
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<< "ptrace detach failed with unexpected error: " << strerror(errno);
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}
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TEST_F(UnwindTest, remote_through_signal) {
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RemoteThroughSignal(SIGUSR1, 0);
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}
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TEST_F(UnwindTest, remote_through_signal_sa_siginfo) {
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RemoteThroughSignal(SIGUSR1, SA_SIGINFO);
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}
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TEST_F(UnwindTest, remote_through_signal_with_invalid_func) {
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RemoteThroughSignal(SIGSEGV, 0);
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}
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TEST_F(UnwindTest, remote_through_signal_sa_siginfo_with_invalid_func) {
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RemoteThroughSignal(SIGSEGV, SA_SIGINFO);
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}
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// Verify that using the same map while unwinding multiple threads at the
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// same time doesn't cause problems.
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TEST_F(UnwindTest, multiple_threads_unwind_same_map) {
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static constexpr size_t kNumConcurrentThreads = 100;
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LocalMaps maps;
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ASSERT_TRUE(maps.Parse());
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auto process_memory(Memory::CreateProcessMemory(getpid()));
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std::vector<std::thread*> threads;
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std::atomic_bool wait;
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wait = true;
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size_t frames[kNumConcurrentThreads];
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for (size_t i = 0; i < kNumConcurrentThreads; i++) {
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std::thread* thread = new std::thread([i, &frames, &maps, &process_memory, &wait]() {
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while (wait)
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;
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std::unique_ptr<Regs> regs(Regs::CreateFromLocal());
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RegsGetLocal(regs.get());
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Unwinder unwinder(512, &maps, regs.get(), process_memory);
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unwinder.Unwind();
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frames[i] = unwinder.NumFrames();
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ASSERT_LE(3U, frames[i]) << "Failed for thread " << i;
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});
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threads.push_back(thread);
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}
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wait = false;
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for (auto thread : threads) {
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thread->join();
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delete thread;
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}
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}
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} // namespace unwindstack
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